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Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation.
Kuatsjah, Eugene; Zahn, Michael; Chen, Xiangyang; Kato, Ryo; Hinchen, Daniel J; Konev, Mikhail O; Katahira, Rui; Orr, Christian; Wagner, Armin; Zou, Yike; Haugen, Stefan J; Ramirez, Kelsey J; Michener, Joshua K; Pickford, Andrew R; Kamimura, Naofumi; Masai, Eiji; Houk, K N; McGeehan, John E; Beckham, Gregg T.
Afiliação
  • Kuatsjah E; Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Zahn M; Centre for Enzyme Innovation, School of Biological Sciences, Institute of Biological and Biomedical Sciences, University of Portsmouth, Portsmouth PO12DT, UK.
  • Chen X; Department of Chemistry and Biochemistry, University of California Los Angeles, CA 90095.
  • Kato R; Department of Materials Science and Bioengineering, Nagaoka University of Technology, Nagaoka, Niigata 940-2188, Japan.
  • Hinchen DJ; Centre for Enzyme Innovation, School of Biological Sciences, Institute of Biological and Biomedical Sciences, University of Portsmouth, Portsmouth PO12DT, UK.
  • Konev MO; Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Katahira R; Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Orr C; Diamond Light Source, Harwell Science and Innovation Campus, Didcot OX11 0DE, UK.
  • Wagner A; Diamond Light Source, Harwell Science and Innovation Campus, Didcot OX11 0DE, UK.
  • Zou Y; Department of Chemistry and Biochemistry, University of California Los Angeles, CA 90095.
  • Haugen SJ; Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Ramirez KJ; Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Michener JK; Biosciences Division, Oak Ridge National Laboratory, Oak Ridge, TN 37830.
  • Pickford AR; Centre for Enzyme Innovation, School of Biological Sciences, Institute of Biological and Biomedical Sciences, University of Portsmouth, Portsmouth PO12DT, UK.
  • Kamimura N; Department of Materials Science and Bioengineering, Nagaoka University of Technology, Nagaoka, Niigata 940-2188, Japan.
  • Masai E; Department of Materials Science and Bioengineering, Nagaoka University of Technology, Nagaoka, Niigata 940-2188, Japan.
  • Houk KN; Department of Chemistry and Biochemistry, University of California Los Angeles, CA 90095.
  • McGeehan JE; Centre for Enzyme Innovation, School of Biological Sciences, Institute of Biological and Biomedical Sciences, University of Portsmouth, Portsmouth PO12DT, UK.
  • Beckham GT; Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
Proc Natl Acad Sci U S A ; 120(4): e2212246120, 2023 01 24.
Article em En | MEDLINE | ID: mdl-36652470
Lignin valorization is being intensely pursued via tandem catalytic depolymerization and biological funneling to produce single products. In many lignin depolymerization processes, aromatic dimers and oligomers linked by carbon-carbon bonds remain intact, necessitating the development of enzymes capable of cleaving these compounds to monomers. Recently, the catabolism of erythro-1,2-diguaiacylpropane-1,3-diol (erythro-DGPD), a ring-opened lignin-derived ß-1 dimer, was reported in Novosphingobium aromaticivorans. The first enzyme in this pathway, LdpA (formerly LsdE), is a member of the nuclear transport factor 2 (NTF-2)-like structural superfamily that converts erythro-DGPD to lignostilbene through a heretofore unknown mechanism. In this study, we performed biochemical, structural, and mechanistic characterization of the N. aromaticivorans LdpA and another homolog identified in Sphingobium sp. SYK-6, for which activity was confirmed in vivo. For both enzymes, we first demonstrated that formaldehyde is the C1 reaction product, and we further demonstrated that both enantiomers of erythro-DGPD were transformed simultaneously, suggesting that LdpA, while diastereomerically specific, lacks enantioselectivity. We also show that LdpA is subject to a severe competitive product inhibition by lignostilbene. Three-dimensional structures of LdpA were determined using X-ray crystallography, including substrate-bound complexes, revealing several residues that were shown to be catalytically essential. We used density functional theory to validate a proposed mechanism that proceeds via dehydroxylation and formation of a quinone methide intermediate that serves as an electron sink for the ensuing deformylation. Overall, this study expands the range of chemistry catalyzed by the NTF-2-like protein family to a prevalent lignin dimer through a cofactorless deformylation reaction.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Liases Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Liases Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2023 Tipo de documento: Article